Isbn: 9789811917967 - privacy preservation in iot: machine learning approaches: a comprehensive survey and use cases (springerbriefs in computer science) (6 Ergebnisse)

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  • Sprache: Englisch

    Verlag: Springer, 2022

    9811917965 / 9789811917967

    Serie: Buch 8 von 60 - SpringerBriefs in Computer Science

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  • Sprache: Englisch

    Verlag: Springer, 2022

    9811917965 / 9789811917967

    Serie: Buch 8 von 60 - SpringerBriefs in Computer Science

    • Softcover

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    Taschenbuch. Zustand: Neu. Druck auf Anfrage Neuware - Printed after ordering - This book aims to sort out the clear logic of the development of machine learning-driven privacy preservation in IoTs, including the advantages and disadvantages, as well as the future directions in this under-explored domain. In big data era, an increasingly massive volume of data is generated and transmitted in Internet of Things (IoTs), which poses great threats to privacy protection. Motivated by this, an emerging research topic, machine learning-driven privacy preservation, is fast booming to address various and diverse demands of IoTs. However, there is no existing literature discussion on this topic in a systematically manner.The issues of existing privacy protection methods (differential privacy, clustering, anonymity, etc.) for IoTs, such as low data utility, high communication overload, and unbalanced trade-off, are identified to the necessity of machine learning-driven privacy preservation. Besides, the leading and emerging attacks pose further threats to privacy protection in this scenario. To mitigate the negative impact, machine learning-driven privacy preservation methods for IoTs are discussed in detail on both the advantages and flaws, which is followed by potentially promising research directions.Readers may trace timely contributions on machine learning-driven privacy preservation in IoTs. The advances cover different applications, such as cyber-physical systems, fog computing, and location-based services. This book will be of interest to forthcoming scientists, policymakers, researchers, and postgraduates.…

  • Sprache: Englisch

    Verlag: Springer, 2022

    9811917965 / 9789811917967

    Serie: Buch 8 von 60 - SpringerBriefs in Computer Science

    • Softcover

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    Sprache: Englisch

    Verlag: Springer, 2022

    9811917965 / 9789811917967

    Serie: Buch 8 von 60 - SpringerBriefs in Computer Science

    • Softcover

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    Taschenbuch. Zustand: Neu. Privacy Preservation in IoT: Machine Learning Approaches | A Comprehensive Survey and Use Cases | Youyang Qu (u. a.) | Taschenbuch | SpringerBriefs in Computer Science | xi | Englisch | 2022 | Springer | EAN 9789811917967 | Verantwortliche Person für die EU: Springer Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg, juergen[dot]hartmann[at]springer[dot]com | Anbieter: preigu.…

  • Sprache: Englisch

    Verlag: Springer Nature Singapore, 2022

    9811917965 / 9789811917967

    Serie: Buch 8 von 60 - SpringerBriefs in Computer Science

    • Softcover

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    Zustand: Hervorragend. Zustand: Hervorragend | Sprache: Englisch | Produktart: Bücher | This book aims to sort out the clear logic of the development of machine learning-driven privacy preservation in IoTs, including the advantages and disadvantages, as well as the future directions in this under-explored domain. In big data era, an increasingly massive volume of data is generated and transmitted in Internet of Things (IoTs), which poses great threats to privacy protection. Motivated by this, an emerging research topic, machine learning-driven privacy preservation, is fast booming to address various and diverse demands of IoTs. However, there is no existing literature discussion on this topic in a systematically manner.The issues of existing privacy protection methods (differential privacy, clustering, anonymity, etc.) for IoTs, such as low data utility, high communication overload, and unbalanced trade-off, are identified to the necessity of machine learning-driven privacy preservation. Besides, the leading and emerging attacks pose further threats to privacy protection in this scenario. To mitigate the negative impact, machine learning-driven privacy preservation methods for IoTs are discussed in detail on both the advantages and flaws, which is followed by potentially promising research directions.Readers may trace timely contributions on machine learning-driven privacy preservation in IoTs. The advances cover different applications, such as cyber-physical systems, fog computing, and location-based services. This book will be of interest to forthcoming scientists, policymakers, researchers, and postgraduates.…

  • Sprache: Englisch

    Verlag: Springer Nature Singapore, 2022

    9811917965 / 9789811917967

    Serie: Buch 8 von 60 - SpringerBriefs in Computer Science

    • Softcover

    Anbieter: BUCHSERVICE / ANTIQUARIAT Lars Lutzer, Wahlstedt, DeutschlandBUCHSERVICE / ANTIQUARIAT Lars Lutzer

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    Softcover. Zustand: gut. 2022. Privacy Preservation in IoT: Machine Learning Approaches In deutscher Sprache. pages.